Jay Raphael M, Coates Michael R, Zhao Huan, Winghart Marc-Oliver, Han Peng, Wang Ru-Pan, Harich Jessica, Banerjee Ambar, Wikmark Hampus, Fondell Mattis, Nibbering Erik T J, Odelius Michael, Huse Nils, Wernet Philippe
Department of Physics and Astronomy, Uppsala University, 75120 Uppsala, Sweden.
Department of Physics, AlbaNova University Center, Stockholm University, 10691 Stockholm, Sweden.
J Am Chem Soc. 2024 May 22;146(20):14000-14011. doi: 10.1021/jacs.4c02077. Epub 2024 May 7.
C-H bond activation reactions with transition metals typically proceed via the formation of alkane σ-complexes, where an alkane C-H σ-bond binds to the metal. Due to the weak nature of metal-alkane bonds, σ-complexes are challenging to characterize experimentally. Here, we establish the complete pathways of photochemical formation of the model σ-complex Cr(CO)-alkane from Cr(CO) in octane solution and characterize the nature of its metal-ligand bonding interactions. Using femtosecond optical absorption spectroscopy, we find photoinduced CO dissociation from Cr(CO) to occur within the 100 fs time resolution of the experiment. Rapid geminate recombination by a fraction of molecules is found to occur with a time constant of 150 fs. The formation of bare Cr(CO) in its singlet ground state is followed by complexation of an octane molecule from solution with a time constant of 8.2 ps. Picosecond X-ray absorption spectroscopy at the Cr L-edge and O K-edge provides unique information on the electronic structure of the Cr(CO)-alkane σ-complex from both the metal and ligand perspectives. Based on clear experimental observables, we find substantial destabilization of the lowest unoccupied molecular orbital upon coordination of the C-H bond to the undercoordinated Cr center in the Cr(CO)-alkane σ-complex, and we define this as a general, orbital-based descriptor of the metal-alkane bond. Our study demonstrates the value of combining optical and X-ray spectroscopic methods as complementary tools to study the stability and reactivity of alkane σ-complexes in their role as the decisive intermediates in C-H bond activation reactions.
过渡金属参与的C-H键活化反应通常通过形成烷烃σ-配合物来进行,其中烷烃的C-H σ键与金属结合。由于金属-烷烃键的性质较弱,σ-配合物在实验上难以表征。在此,我们确定了在辛烷溶液中由Cr(CO)光化学形成模型σ-配合物Cr(CO)-烷烃的完整途径,并表征了其金属-配体键合相互作用的性质。利用飞秒光吸收光谱,我们发现在实验的100飞秒时间分辨率内发生了光诱导的Cr(CO)中CO解离。发现一部分分子以150飞秒的时间常数进行快速双分子复合。单重态基态的裸Cr(CO)形成后,溶液中的一个辛烷分子以8.2皮秒的时间常数进行配位。在Cr L边和O K边进行的皮秒X射线吸收光谱从金属和配体两个角度提供了关于Cr(CO)-烷烃σ-配合物电子结构的独特信息。基于明确的实验观测结果,我们发现在Cr(CO)-烷烃σ-配合物中,当C-H键与配位不足的Cr中心配位时,最低未占据分子轨道会发生显著失稳,我们将此定义为金属-烷烃键基于轨道的一般描述符。我们的研究证明了将光学和X射线光谱方法结合作为互补工具来研究烷烃σ-配合物作为C-H键活化反应中决定性中间体的稳定性和反应性的价值。